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Hypoxia enhances IPF mesenchymal progenitor cell fibrogenicity via the lactate/GPR81/HIF1α pathway
Libang Yang, Adam Gilbertsen, Hong Xia, Alexey Benyumov, Karen Smith, Jeremy Herrera, Emil Racila, Peter B. Bitterman, Craig A. Henke
Libang Yang, Adam Gilbertsen, Hong Xia, Alexey Benyumov, Karen Smith, Jeremy Herrera, Emil Racila, Peter B. Bitterman, Craig A. Henke
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Research Article Pulmonology Stem cells

Hypoxia enhances IPF mesenchymal progenitor cell fibrogenicity via the lactate/GPR81/HIF1α pathway

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Abstract

Hypoxia is a sentinel feature of idiopathic pulmonary fibrosis (IPF). The IPF microenvironment contains high lactate levels, and hypoxia enhances cellular lactate production. Lactate, acting through the GPR81 lactate receptor, serves as a signal molecule regulating cellular processes. We previously identified intrinsically fibrogenic mesenchymal progenitor cells (MPCs) that drive fibrosis in the lungs of patients with IPF. However, whether hypoxia enhances IPF MPC fibrogenicity is unclear. We hypothesized that hypoxia increases IPF MPC fibrogenicity via lactate and its cognate receptor GPR81. Here we show that hypoxia promotes IPF MPC self-renewal. The mechanism involves hypoxia-mediated enhancement of LDHA function and lactate production and release. Hypoxia also increases HIF1α levels, and this increase in turn augments the expression of GPR81. Exogenous lactate operating through GPR81 promotes IPF MPC self-renewal. IHC analysis of IPF lung tissue demonstrates IPF MPCs expressing GPR81 and hypoxic markers on the periphery of the fibroblastic focus. We show that hypoxia enhances IPF MPC fibrogenicity in vivo. We demonstrate that knockdown of GPR81 inhibits hypoxia-induced IPF MPC self-renewal in vitro and attenuates hypoxia-induced IPF MPC fibrogenicity in vivo. Our data demonstrate that hypoxia creates a feed-forward loop that augments IPF MPC fibrogenicity via the lactate/GPR81/HIF1α pathway.

Authors

Libang Yang, Adam Gilbertsen, Hong Xia, Alexey Benyumov, Karen Smith, Jeremy Herrera, Emil Racila, Peter B. Bitterman, Craig A. Henke

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Figure 7

Hypoxia promotes GPR81 expression in IPF MPCS via HIF1α.

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Hypoxia promotes GPR81 expression in IPF MPCS via HIF1α.
(A) HIF1α expre...
(A) HIF1α expression was quantified in IPF and control MPCs cultured under normoxic conditions by qPCR (left panel) and Western blot (middle panel). Densitometry values summarizing Western blot data are shown in the right panel. GAPDH served as a loading control. n = 4, each of control and IPF cell lines. (B) HIF1α expression was quantified in IPF and control MPCs exposed to normoxic or hypoxic conditions by qPCR (left panel) and Western blot analysis (middle panel). Densitometry values summarizing Western blot data are shown in the right panel. GAPDH served as a loading control. n = 3, each of control and IPF cell lines used. (C) IPF MPCs were transduced with HIF1α or scrambled shRNA, and the cells were cultured under hypoxic conditions. HIF1α and GPR81 expression levels were quantified by qPCR (left panel) and Western blot analysis (middle panel). Densitometry values summarizing Western blot data are shown in the right panel. GAPDH served as a loading control. Three IPF cell lines were used. (D) ChIP assay. IPF MPCs were cultured under normoxic or hypoxic conditions. HIF1α was immunoprecipitated from nuclear fractions using HIF1α antibody, and qPCR for GPR81 was performed. Immunoprecipitation using isotype antibody (IgG) served as control. Three IPF cell lines were used. Data are shown as mean ± SEM. P values were determined by 2-tailed Student’s t test.

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